| Literature DB >> 33638280 |
Anupriya K Haridas1, Milan K Sadan1, Huihun Kim1, Jungwon Heo2, Sun Sik Kim3, Chang-Ho Choi1,2, Hyun Young Jung3, Hyo-Jun Ahn1, Jou-Hyeon Ahn1,2.
Abstract
Iron sulfide (FeS) anodes are plagued by severe irreversibility and volume changes that limit cycle performances. Here, a synergistically coupled hybrid composite, nanoengineered iron sulfide/S-doped graphene aerogel, was developed as high-capacity anode material for Li/Na-ion half/full batteries. The rational coupling of in situ generated FeS nanocrystals and the S-doped rGO aerogel matrix boosted the electronic conductivity, Li+ /Na+ diffusion kinetics, and accommodated the volume changes in FeS. This anode system exhibited excellent long-term cyclability retaining high reversible capacities of 422 (1100 cycles) and 382 mAh g-1 (1600 cycles), respectively, for Li+ and Na+ storage at 5 A g-1 . Full batteries designed with this anode system exhibited 435 (FeS/srGOA||LiCoO2 ) and 455 mAh g-1 (FeS/srGOA||Na0.64 Co0.1 Mn0.9 O2 ). The proposed low-cost anode system is competent with the current Li-ion battery technology and extends its utility for Na+ storage.Entities:
Keywords: S-doping; batteries; electrode materials; long-term cycling; nanoarchitecture
Year: 2021 PMID: 33638280 DOI: 10.1002/cssc.202100247
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928